An optical sheet with better brightness-enhancing effectiveness includes a substrate and pluralities of microstructures disposed on the substrate. The microstructures are spaced from one another at a distance d. The cross-section of the microstructure is formed in a triangle which has a base length d. distance d and base length d satisfy the following equation: 0<d/(d+D)≦0.61.
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1. An optical sheet comprising:
a substrate; and
a plurality of microstructures which are disposed on the substrate and spaced from one another at a distance d, and have respectively a cross section formed in a triangle which has a base length d, wherein the distance d and the base length d are formed to satisfy an equation as follows: 0.06<d/(d+D)<0.38, wherein the substrate includes a top surface, wherein the plurality of microstructures is disposed on the top surface of the substrate, with the base length d being on the top surface, wherein the plurality of microstructures includes a spacing along the top surface from one another and defining the distance d, with each spacing arranged in a tortuous fashion on the top surface.
11. An optical sheet comprising:
a substrate having a top surface; and
a plurality of microstructures disposed on the top surface of the substrate at a distance d on the top surface, with each of the plurality of microstructures having a cross section formed in a triangle which as a base length d, wherein the distance d and the base length d are formed to satisfy an equation as follows: 0<d(d+d)<0.61, wherein the top surface of the substrate is a curved surface and the thickness of the substrate varies,
wherein the base length d is on the top surface, wherein the plurality of microstructures includes a spacing along the top surface from one another and defining the distance d, with each spacing arranged in a tortuous fashion on the top surface.
2. The optical sheet of
3. The optical sheet of
4. The optical sheet of
5. The optical sheet of
6. The optical sheet of
7. The optical sheet of
8. The optical sheet of
9. The optical sheet of
10. The optical sheet of
12. The optical sheet of
13. The optical sheet of
14. The optical sheet of
15. The optical sheet of
16. The optical sheet of
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1. Field of the Invention
The present invention relates to an optical sheet and, particularly, to a brightness enhancing optical sheet.
2. Description of the Prior Art
In recent years, the traditional cathode ray tube display (commonly called CRT display) is being gradually replaced by a liquid crystal display (LCD). This is mainly because the LCD releases far less radiation than the CRT display, and the production cost of the LCD also dropped significantly in recent years. In general, the LCD consists of two main elements, namely a backlight module and a liquid crystal panel. The backlight module mainly aims to provide light to the LCD.
Refer to
However, the diffusion plate 130 often cannot fully overcome the problem of uneven brightness. Hence, a diffusion film 142 has to be added to diffuse the light more evenly. Moreover, as the light emission angle of the light emitted from the diffusion film 142 is larger, the BEF 144 has to be added on an upper side of the diffusion film 142. The BEF 144 has a thickness about 0.062 mm to 0.375 mm. The BEF 144 mainly includes a substrate 144a and a plurality of microstructures 144b disposed on the substrate 144a. The microstructures 144b are prism structures in a triangular shape, and each has a cross section in the form of an isosceles right triangle in the vertical direction. The BEF 144 provides a light converging effect and, thus, can enhance the brightness within the visual angle range of the backlight module 100.
Because of manufacturing process and material, the BEF 144 is the most expensive in the cost of the backlight module 100. Referring to
It is an object of the present invention to provide an optical sheet with an improved light converging effect.
The optical sheet according to the invention includes a substrate and a plurality of microstructures disposed on the substrate. The microstructures are spaced from one another at a distance d, are formed in triangular struts, and have respectively a vertex angle of 90°. Namely the cross section of each of the microstructures is an isosceles right triangle with a base length D. Distance d and D are formed to satisfy the following equation:
0<d/(d+D)<0.61
In another aspect, the optical sheet is formed with the distance d and base length D to satisfy the following equation:
0.03≦d/(d+D)<0.52
In yet another aspect, the optical sheet is formed with the distance d and D to satisfy the following equation:
0.06≦d/(d+D)<0.38
In yet another aspect, the optical sheet is formed with the distance d and D to satisfy the following equation:
0.08≦d/(d+D)<0.27
In yet another aspect, the optical sheet is formed with the distance d and base length D to satisfy the following equation:
d/(d+D)=0.13
In yet another aspect, the optical sheet is formed with the distance d and base length D to satisfy the following equation:
d/(d+D)=0.1
In yet another aspect, the optical sheet is formed at a thickness between 0.5 mm and 2 mm or between 0.062 mm and 0.375 mm.
In yet another aspect, the optical sheet is made from material selected from the group consisting of polymethylmethacrylate, polycarbonate, polystyrene, methyl methacrylate-styrene monomers copolymer, polyvinyl, polypropylene and polyethylene terephthalate.
It is found that the optical sheet of the invention has a more desirable light converging effect in a condition in which the microstructures are spaced from one another at a selected distance and 021 d/(d+D)<0.61. The light converging effect is optimum in the condition of d/(d+D)=0.13.
The foregoing, as well as additional objects, features and advantages of the invention will be more readily apparent from the following detailed description, which proceeds with reference to the accompanying drawings.
Refer to
Simulations for light converging effect are performed on the optical sheet 230. In the simulations, incident light 10 is a uniform parallel light with an intensity of 1000 lumen. The substrate 230a has a length and width of 4.8 mm and a thickness of 0.6 mm. The optical sheet 230 is made from a transparent material selected from the group consisting of polymethylmethacrylate, polycarbonate, polystyrene, methyl methacrylate-styrene monomers copolymer, polyvinyl, polypropylene and polyethylene terephthalate. In this embodiment, the transparent material selected is polymethylmethacrylate. During the simulations, the sum of the base length D and the distance d is maintained a constant, namely 0.3 mm. The distance d is changed relative to the ratio of (D+d) to perform the simulations.
Refer to
Refer to
In the simulations previously discussed, the thickness of the substrate 230a is 0.6 mm. Even if the thickness of the substrate is 1.376 mm, when the ratio of d/(D+d) is 0.1, and compared with the conventional technique (namely d/(D+d) being 0), the luminosity on the light emission surface of the optical sheet 230 is still higher by 30% (referring to
As a conclusion, when 0<d/(d+D)<0.61, compared with the conventional diffusion plate 130′, the optical sheet 230 has a more desirable light converging effect. When d/(D+d) is 0.13, the optical sheet 230 has an optimum light converging effect. Moreover, the simulation outcomes indicate that even if the thickness of the substrate 230a decreases to 0.06 mm and when the ratio of d/(D+d) is 0.1, the luminosity on the light emission surface of the optical sheet 230 is still higher by about 40% than the conventional technique. Using the optical sheet 230 at the thickness of 0.06 mm to replace the BEF 144 in
In short, the invention not only improves the light converging effect of the conventional diffusion plate 130 (with the thickness ranged from 0.5 mm to 2 mm), but also, can improve the light converging effect of the BEF 144 (with the thickness ranged from 0.062 mm to 0.375 mm).
In the embodiments set forth above, the microstructures are formed in triangular struts and have a cross section of an isosceles right triangle. To those skilled in the art, the shape of the microstructures may be changed, such as making the vertex angle other than 90°. Also, the microstructures may also be formed in a shape other than the triangular struts.
While the preferred embodiments of the invention have been set forth for the purpose of disclosure, modifications of the disclosed embodiments of the invention as well as other embodiments thereof may occur to those skilled in the art. Accordingly, the appended claims are intended to cover all embodiments which do not depart from the spirit and scope of the invention.
Lee, Chen-Sheng, Cheng, Wen-Feng
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